Recombinant Human VEGF-165 (carrier-free)

Pricing & Availability
Regulatory Status
RUO
Other Names
VEGFA165, MVCD1, VEGF, Vascular permeability factor (VPF)
VEGF-165_Human_Recombinant_Protein_BA_092412
HUVEC cell proliferation induced by human VEGF-165.
  • VEGF-165_Human_Recombinant_Protein_BA_092412
    HUVEC cell proliferation induced by human VEGF-165.
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583702 10 µg $218.00
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583704 25 µg $411.00
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583706 100 µg $703.00
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583708 500 µg $1987.00
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Description

VEGF (known also as VEGFA) was initially identified in conditioned medium from bovine pituitary follicular cells. VEGFA belongs to the VEGF family, which has the following members: VEGF-A, VEGF-B, VEGF-C (VEGF-2), VEGF-D, and PlGF (placental growth factor). In addition, viral VEGF homologs (collectively called VEGF-E) and snake venom VEGFs, such as T.f. (Trimeresurus flavoviridis) and svVEGF (called VEGF-F), have been described. VEGFA is alternatively spliced to generate variants with different numbers of amino acids, such as VEGFA121, VEGFA145, VEGFA165, and VEGFA189.  VEGFA165 is predominant and responsible for VEGFA biological potency.

While VEGF121 is freely diffusible and does not bind to neuropilins (NRPs) or heparan sulphate (HS), VEGF165 and VEGF189 bind to both, resulting in retention on the cell surface or in the extracellular matrix. NRP1 lacks a typical kinase domain and acts as a co-receptor, and in response to VEGF165, NRP1 couples with VEGF-Rs to signal in endothelial cells. In addition, it has been suggested that bone marrow cells that are recruited to Ewing’s tumors are differentiated into vascular smooth muscle cells, and VEGF165 is responsible for this differentiation.

VEGFA is highly expressed in most of the solid tumors generated in breast, lung, renal, colorectal, and liver tissues. VEGFA has strong vascular permeability activity, and significantly contributes to the formation of ascites tumors. VEGFA can act as a direct proinflammatory mediator during the pathogenesis of rheumatoid arthritis (RA), and protect rheumatoid synoviocytes from apoptosis, which contributes to synovial hyperplasia. VEGFA is expressed in synovial macrophages and synovial fibroblasts in RA patients. Also, VEGFA is associated to age-related macular degeneration (AMD). AMD is due to neovascularization that originates from endothelial cells in the choroid that grow into neurosensory retina as choroidal neovascularization (CNV).
 

Technical data sheet

Product Details

Source
Human VEGF-165, amino acids Ala27-Arg191 (Accession# AAM03108) was expressed in 293E cells.
Molecular Mass
The 165 amino acid recombinant protein has a predicted molecular mass of approximately 19 kD. The DTT-reduced protein migrates at approximately 20-28 kD and non-reduced protein migrates at 50 kD by SDS-PAGE. The N-terminal amino acid is Alanine.
Purity
> 95%, as determined by Coomassie stained SDS-PAGE.
Formulation
0.22 µm filtered protein solution in 5 mM citric acid, 5 mM Na2HPO4, 0.15 M NaCl pH 4.0.
Endotoxin Level
Less than 0.01 ng per µg cytokine as determined by the LAL method.
Concentration
10 and 25 µg sizes are bottled at 200 µg/mL. 100 µg size and larger sizes are lot-specific and bottled at the concentration indicated on the vial. To obtain lot-specific concentration and expiration, please enter the lot number in our Certificate of Analysis online tool.
Storage & Handling
Unopened vial can be stored between 2°C and 8°C for up to 2 weeks, at -20°C for up to six months, or at -70°C or colder until the expiration date. For maximum results, quick spin vial prior to opening. The protein can be aliquoted and stored at -20°C or colder. Stock solutions can also be prepared at 50 - 100 µg/mL in appropriate sterile buffer, carrier protein such as 0.2 - 1% BSA or HSA can be added when preparing the stock solution. Aliquots can be stored between 2°C and 8°C for up to one week and stored at -20°C or colder for up to 3 months. Avoid repeated freeze/thaw cycles.
Activity
ED50 = 1 - 6 ng/ml, corresponding to a specific activity of 0.16 - 1.0 x 106 units/mg, as determined by the dose dependent stimulation of HUVEC cells proliferation.

The specific activity of recombinant human VEGF-165 is approximately 4.59 x 103 IU/µg when compared against the WHO Reference Reagent for Human VEGF-165 (NIBSC code: 88/646) as determined by the dose dependent stimulation of HUVEC cell proliferation.

For more information on specific activity, please visit the Recombinant Protein Unit Conversions page.
Application

Bioassay

Application Notes

BioLegend carrier-free recombinant proteins provided in liquid format are shipped on blue-ice. Our comparison testing data indicates that when handled and stored as recommended, the liquid format has equal or better stability and shelf-life compared to commercially available lyophilized proteins after reconstitution. Our liquid proteins are verified in-house to maintain activity after shipping on blue ice and are backed by our 100% satisfaction guarantee. If you have any concerns, contact us at tech@biolegend.com.

Application References

(PubMed link indicates BioLegend citation)
  1. Fishman JM, et al. 2013. PNAS. 110:14360. PubMed
  2. Basavarajappa HD, et al. 2014. PLoS One. 9:95694. PubMed
Product Citations
  1. Abu El–Asrar AM, et al. 2019. Front Immunol. 2.327777778. PubMed
  2. Muniyandi A, et al. 2023. Sci Rep. 13:1747. PubMed
  3. Phay M, et al. 2015. PLoS One. 10: 0137344. PubMed
  4. Fishman J, et al. 2013. Proc Natl Acad Sci U S A. 110:14360. PubMed
  5. Urbantat RM, et al. 2021. Int J Mol Sci. 22:. PubMed
  6. Kwiatkowski S, et al. 2017. PLoS One. 10.1371/journal.pone.0185065. PubMed
  7. Xie B, et al. 2015. Int J Pharmaceutics. 490: 375-383. PubMed
  8. Lee K, et al. 2015. J Biol Chem. 290: 28438 - 28445. PubMed
  9. Chen Z, et al. 2020. Development. . PubMed
  10. Linville RM, et al. 2022. Fluids Barriers CNS. 19:54. PubMed
  11. Basavarajappa H, et al. 2014. PLoS One. 9:95694. PubMed
  12. Rexach JE, et al. 2020. Cell Rep. 33:108398. PubMed
  13. Chen Z, et al. 2020. Development. :147. PubMed
  14. Wagner JUG, et al. 2020. J Mol Cell Cardiol. 138:269. PubMed

Antigen Details

Structure
Homodimer
Distribution

Widely expressed

Function
VEGFA is a key player in vasculogenesis, the formation of blood vessels from progenitor cells, as well as angiogenesis. The expression of the VEGFA gene is upregulated via hypoxia, estrogen, and NF-κB pathways. In addition, VEGFA is upregulated by PDGF-BB, P1GF, TGFβ1, IGF1, FGFs, HGF, TNFα, and IL-1. VEGFA induces proliferation and cell migration in endothelial cells, and plays important roles during wound healing. Also, VEGFA regulates haematopoietic stem cell survival.

VEGFA interacts with vascular endothelial cells and monocytes/macrophages, which express VEGFR1. This interaction induces proliferation of endothelial cells and stimulates migration of monocytes/macrophages. VEGFR2 is expressed in endothelial cells and VEGFR2-signaling is essential for the development of vascular systems in the embryo.
Ligand/Receptor
VEGFA binds and activates two tyrosine kinase receptors, VEGFR1 (Flt-1), VEGFR2 (KDR/Flk-1)
Cell Type
Embryonic Stem Cells, Mesenchymal Stem Cells, Neural Stem Cells
Biology Area
Angiogenesis, Cell Biology, Neuroscience, Stem Cells, Synaptic Biology
Molecular Family
Cytokines/Chemokines, Growth Factors
Antigen References

1. Conn G, et al. 1990. P. Natl. Acad. Sci. USA 87:1323.
2. Gerber H, et al. 2002. Nature 417:954.
3. Shibuya M, et al. 2006. J. Biochem. Mol. Biol. 39:469.
4. Reddy K, et al. 2008. Angiogenesis 11:257.
5. Shibuya M. 2008. BMB Rep. 41:278.
6. Monaghan-Benson E, et al. 2010. Am. J. Pathol. 177:2091.
7. Koch S and Claesson-Welsh L. 2012. Cold. Spring. Harb. Perspect. Med. 2:a006502.

Gene ID
7422 View all products for this Gene ID
UniProt
View information about VEGF-A on UniProt.org
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